On the Throughput Cost of Physical Layer Security in Decentralized Wireless Networks
arXiv:1012.4552 · doi:10.1109/TWC.2011.061511.102257
Abstract
This paper studies the throughput of large-scale decentralized wireless networks with physical layer security constraints. In particular, we are interested in the question of how much throughput needs to be sacrificed for achieving a certain level of security. We consider random networks where the legitimate nodes and the eavesdroppers are distributed according to independent two-dimensional Poisson point processes. The transmission capacity framework is used to characterize the area spectral efficiency of secure transmissions with constraints on both the quality of service (QoS) and the level of security. This framework illustrates the dependence of the network throughput on key system parameters, such as the densities of legitimate nodes and eavesdroppers, as well as the QoS and security constraints. One important finding is that the throughput cost of achieving a moderate level of security is quite low, while throughput must be significantly sacrificed to realize a highly secure network. We also study the use of a secrecy guard zone, which is shown to give a significant improvement on the throughput of networks with high security requirements.
Accepted for publication in IEEE Transactions on Wireless Communications
References in corpus (3)
Cited by in corpus (16)
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- Physical Layer Security in Downlink Multi-Antenna Cellular Networks
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- Artificial-Noise-Aided Secure Multi-Antenna Transmission with Limited Feedback
- Secure Routing in Multihop Wireless Ad-hoc Networks with Decode-and-Forward Relaying
- Safeguarding Decentralized Wireless Networks Using Full-Duplex Jamming Receivers
- Multiuser Diversity for Secrecy Communications Using Opportunistic Jammer Selection -- Secure DoF and Jammer Scaling Law
- On Eavesdropper-Tolerance Capability of Two-Hop Wireless Networks
- Impact of Artificial Noise on Cellular Networks: A Stochastic Geometry Approach
- Physical Layer Security-Aware Routing and Performance Tradeoffs in Ad Hoc Networks
- Secrecy of Multi-Antenna Transmission with Full-Duplex User in the Presence of Randomly Located Eavesdroppers
- On the Secrecy of Interference-Limited Networks under Composite Fading Channels
- Boundaries as an Enhancement Technique for Physical Layer Security
- Secure Transmission for Relay Wiretap Channels in the Presence of Spatially Random Eavesdroppers
- Near-Field Secure Beamfocusing With Receiver-Centered Protected Zone